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This section provides guides and references to use the Looker connector. Configure and schedule Looker metadata and profiler workflows from the Collate UI:

Requirements

Collate ingests two types of metadata from Looker:
  • Dashboards & Charts
  • LookML Models For the project metadata being ingested:
  • The actual LookML Project an Explore or View is developed in.
  • For Dashboards, the folder name from the UI, since there is no other hierarchy involved there. In terms of permissions, a user with access to the Dashboards and LookML Explores to be ingested is required. Create your API credentials following these docs. However, LookML Views are not present in the Looker SDK. Instead, that information must be extracted directly from the GitHub repository holding the source .lkml files. To get this metadata, a GitHub token with read only access to the repository is required. Follow these steps from the GitHub documentation.
Tip: The GitHub credentials are completely optional. Without them, Collate cannot ingest metadata out of LookML Views, including their lineage to the source databases. Moreover, Looker lineage only supports LookML views configured with sql_table_name and derived_table in plain SQL. Liquid variables are not yet supported.

Entity Mapping

The Looker connector maps Looker assets to Collate entities as follows:

Example Structure

Looker Structure:
Collate Structure:
This mapping ensures that:
  • Looker dashboards appear as Collate dashboards, organized by their Looker folder
  • Dashboard tiles appear as charts underneath their dashboard
  • LookML Explores and Views appear as data models, organized by their LookML project
  • The project field is sourced differently depending on entity type: a Looker folder for Dashboards, a LookML project for Data Models

Metadata Ingestion

To ingest metadata from Looker, you need to create a service connection. The service connects Looker with Collate. Once you create a service, Collate automatically starts ingesting metadata.

Step 1: Add New Service

  1. In the left navigation, click Connections.
  2. On the Connections page, click Add New Service.
Add New Service

Step 2: Select a Service and Connector

From the service type dropdown, select Dashboard Services, then click the Looker connector tile. Select Service

Step 3: Add Service Name and Description

  • Enter a unique, descriptive Service Name. Collate identifies services by their service name. Enter a name that distinguishes this deployment from other Looker services you are ingesting metadata from.
  • Optional: Enter a Description for the service.
Add New Service Name
Note: The service name cannot be changed after it is set.

Step 4: Configure Connection Options

Specify where ingestion runs, provide your source credentials, and verify the connection.

Select Ingestion Runner

Select an Ingestion Runner: the runner where the ingestion pipeline will execute. Add Name and Select Ingestion Runner

Enter Connection Details

Enter the connection details for Looker. The right-hand panel in the UI displays inline help for each field. Configure Service Connection
  • Host and Port: URL to the Looker instance, for example, https://my-company.region.looker.com.
  • Client ID: User’s Client ID to authenticate to the SDK. This user should have privileges to read all the metadata in Looker.
  • Client Secret: User’s Client Secret for the same ID provided. To ingest LookML Views, provide your GitHub credentials:
  • Repository Owner: The owner (user or organization) of a GitHub repository. For example, in https://github.com/open-metadata/OpenMetadata, the owner is open-metadata.
  • Repository Name: The name of a GitHub repository. For example, in https://github.com/open-metadata/OpenMetadata, the name is OpenMetadata.
  • API Token: Token to use the API. This is required for private repositories and to avoid hitting API rate limits. Follow these steps to create a fine-grained personal access token. When configuring, give repository access to Only select repositories and choose the one containing your LookML files. Set Repository Permissions to Read-only for Contents.
Tip: When using a Hybrid Ingestion Runner, any sensitive credential fields—such as passwords, API keys, or private keys—must reference secrets using the following format:
This applies only to fields marked as secrets in the connection form (these typically mask input and show a visibility toggle icon). For more information about managing secrets in hybrid setups, see the Hybrid Ingestion Runner Secret Management Guide

Test Connection

Once the credentials have been added, click on Test Connection and Save the changes. Test Connection

Step 5: Configure Ingestion Options

In the What to Ingest step, use filter patterns to control which assets Collate ingests from your dashboard service. Filter patterns use regular expressions applied to asset names.

How Filter Patterns Work

  • Include: Add one or more comma-separated regular expressions. Collate ingests only assets whose names match at least one expression. Leave blank to include all assets.
  • Exclude: Add one or more comma-separated regular expressions. Collate skips any asset whose name matches an expression. Leave blank to exclude nothing.
Rules match asset names using one of five expressions:
  • contains: matches any name containing the value. For example, sales matches my_sales_data and sales_2024.
  • starts with: matches names beginning with the value. For example, prod_ matches prod_db and prod_schema.
  • ends with: matches names ending with the value. For example, _raw matches events_raw and logs_raw.
  • is exactly: matches the exact name only. For example, analytics matches only analytics.
  • matches regex: matches names using a regular expression. For example, ^prod_.*_v\d+$ matches prod_events_v1.
When both Include and Exclude are set, Exclude takes priority.
Tip: Leave all filter patterns empty to ingest all dashboards, charts, and data models available in the source.
Filter Options The Dashboard, Chart, and Data Model sections each include the following filter options:
  • Dashboard: Controls which dashboards Collate ingests from the source.
  • Chart: Controls which charts within the ingested dashboards are included.
  • Data Model: Controls which data models are included in metadata ingestion.
Each section provides the following controls:
  • Scan Mode: Choose between the following scan modes:
    • Scan all: Ingests every asset of that type the connector can access. This is the default.
    • Only specific: Enables include rules so only assets matching at least one rule are ingested.
  • Exclude system toggle: Use this toggle to automatically filter out system-reserved names defined by the connector—for example, Exclude system databases for the Databases section.
  • Always exclude: Add permanent exclusion rules (shown in red). Assets matching these rules are never ingested, regardless of include rules.
  • Preview: Shows a real-time summary of what will be in scope based on your current rules.
  • Include rules (available only in Only specific mode): Click + Add to define a rule. Added rules appear as chips. An asset is included if it matches any rule.
Tip: If AutoPilot is enabled, usage tracking, data lineage, and other downstream workflows start automatically after the first metadata ingestion completes.

Step 6: Create & Deploy

Click Create & Deploy to deploy the agent and start the first metadata ingestion run. Collate saves the service configuration and immediately begins pulling metadata from the source. To monitor ingestion progress or view the service you just added, go to Connections in the left navigation and select your service.

Configure Metadata Agent and Schedule Ingestion

The Metadata Agent extracts dashboards, charts, data models, and other structural metadata from your source and keeps your Collate catalog in sync. It powers discovery, lineage, and governance across your data assets. When you click Create & Deploy, Collate automatically deploys a Metadata Agent for this service and triggers the first ingestion run. View its status and run history from the Agents tab on the service detail page. To configure the additional Metadata Agent and schedule ingestion, follow these steps:
  1. In the left navigation, click Connections and select your service.
  2. Click the Agents tab.
  3. Click Add Agent and select Metadata from the dropdown. Add Metadata Agent For some services, the dropdown is not available and clicking Add Agent takes you directly to the agent configuration page.
  4. On the Configure Ingestion page, do the following and click Next.
    • Name this Ingestion: Enter a unique recognizable name for this ingestion pipeline. Name this Ingestion
    • Agent Setup: Configure ingestion parameters. The following fields are available: Agent Setup
    • Filter Patterns: Apply include or exclude rules to scope which dashboards, charts, data models, and projects this agent ingests. These follow the same filter options described in Step 5. Filter Patterns
    • Scope & Behaviour: Control what metadata to include and how to handle deletions. Toggle each option on or off based on your needs: Scope & Behaviour
  5. On the Schedule Interval page, set when the agent runs:
    • Schedule: Choose a preset interval (Hourly, Daily, Weekly, Monthly) or enter a custom cron expression.
    • On-Demand: No automatic schedule; trigger the agent manually when needed.
    Schedule Interval
  6. Click Add to deploy the agent.

Lineage

Lineage in Collate shows you which database tables power each dashboard. When lineage is set up, you can trace any dashboard back to the exact source tables in your database. There is no separate lineage agent or lineage pipeline — lineage is collected as part of the same metadata ingestion workflow. To enable lineage, open the Configure Metadata Agent section above, scroll to the Lineage Information section in the agent setup, and enter one or more database service names in the Db Service Prefixes field. Lineage Information Configuring Db Service Prefixes is optional but recommended — it restricts table matching to specific database services. If left blank, Collate attempts to match source tables across all ingested database services.
Tip: If your dashboards pull data from multiple database services, add each service as a separate entry in the Db Service Prefixes field.

Troubleshooting

Looker Troubleshooting

Learn more about how to troubleshoot common Looker connector issues and resolve configuration or ingestion errors.